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基于 N-([1,1'-联苯]-4-基)-1-萘甲酰胺的支架合成、化学信息学分析及其作为细菌生物膜抑制剂的筛选

N-([1,1'-biaryl]-4-yl)-1-naphthamide-based scaffolds synthesis, their cheminformatics analyses, and screening as bacterial biofilm inhibitor.

机构信息

Department of Chemistry, Government College, University of Faisalabad, Faisalabad, Pakistan.

Department of Chemistry, University of Okara, Okara, Pakistan.

出版信息

J Basic Microbiol. 2022 Sep;62(9):1143-1155. doi: 10.1002/jobm.202100288. Epub 2021 Nov 1.

Abstract

Naphthamides have pharmacological potential as they express strong activities against microorganisms. The commercially available naphthoyl chloride and 4-bromoaniline were condensed in dry dichloromethane (DCM) in the presence of Et N to form N-(4-bromophenyl)-1-naphthamide (86%) (3). Using a Pd(0) catalyzed Suzuki-Miyaura Cross-Coupling reaction of (3) and various boronic acids, a series of N-([1,1'-biaryl]-4-yl)-1-naphthamide derivatives (4a-h) were synthesized in moderate to good yields. The synthesized derivatives were evaluated for cytotoxicity haemolytic assay and biofilm inhibition activity through in silico and in vitro studies. Molecular docking, ADME (absorption, distribution, metabolism, and excretion), toxicity risk, and other cheminformatics predict synthesized molecules as biologically active moieties, further validated through in vitro studies in which compounds (4c) and (4f) showed significant haemolytic activity whereas (4e) exhibited an efficient biofilm inhibition activity against Gram-negative bacteria Escherichia coli and Gram-positive bacteria Bacillus subtilis. When forming biofilms, bacteria become resistant to various antimicrobial treatments. Currently, research is focused on the development of agents that inhibit biofilm formation, thus the present work is valuable for preventing future drug resistance.

摘要

萘甲酰胺具有药理学潜力,因为它们对微生物表现出强烈的活性。商业上可获得的萘甲酰氯和 4-溴苯胺在干燥的二氯甲烷 (DCM) 中在 Et₃N 的存在下缩合,形成 N-(4-溴苯基)-1-萘甲酰胺 (86%) (3)。通过 Pd(0)催化的 (3) 和各种硼酸的 Suzuki-Miyaura 交叉偶联反应,合成了一系列 N-([1,1'-联苯]-4-基)-1-萘甲酰胺衍生物 (4a-h),产率中等至良好。通过体内外研究评估了合成衍生物的细胞毒性、溶血试验和生物膜抑制活性。通过分子对接、ADME(吸收、分布、代谢和排泄)、毒性风险和其他化学信息学预测,合成的分子具有生物活性,通过体外研究进一步验证,其中化合物 (4c) 和 (4f) 表现出显著的溶血活性,而 (4e) 对革兰氏阴性菌大肠杆菌和革兰氏阳性菌枯草芽孢杆菌表现出有效的生物膜抑制活性。当形成生物膜时,细菌对各种抗菌处理产生抗性。目前,研究集中在开发抑制生物膜形成的药物上,因此本工作对于防止未来的药物耐药性具有重要价值。

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